arXiv Analytics

Sign in

arXiv:1302.1259 [cond-mat.mes-hall]AbstractReferencesReviewsResources

First-principles investigation of transient current of molecular devices by using complex absorbing potential

L. Zhang, J. Chen, J. Wang

Published 2013-02-06Version 1

Based on the non-equilibrium Green's function (NEGF) coupled with density function theory (DFT), namely, NEGF-DFT quantum transport theory, we propose an efficient formalism to calculate the transient current of molecular devices under a step-like pulse from first principles. By combining NEGF-DFT with the complex absorbing potential (CAP), the computational complexity of our formalism (NEGF-DFT-CAP) is proportional to $\emph{O}(N)$ where $N$ is the number of time steps in the time-dependent transient calculation. Compared with state-of-the-art algorithm of first principles time-dependent calculation that scales with at least $N^2$, this order N technique drastically reduces the computational burden making it possible to tackle realistic molecular devices. To ensure the accuracy of our method, we carry out the benchmark calculation compared with exact NEGF-TDDFT formalism and they agree well with each other. As an illustration, we investigate the transient current of molecular device Al-C$_3$-Al from first principles.

Related articles: Most relevant | Search more
arXiv:0804.3083 [cond-mat.mes-hall] (Published 2008-04-18)
Electron and Spin Transport in the Presence of Complex Absorbing Potential
arXiv:1011.2625 [cond-mat.mes-hall] (Published 2010-11-11)
First-principles investigation of dynamical properties of molecular devices under a steplike pulse
arXiv:1207.6222 [cond-mat.mes-hall] (Published 2012-07-26, updated 2012-10-01)
Transient noise spectra in resonant tunneling setups: Exactly solvable models